Reset-Free Data-Driven Gain Estimation: Power Iteration using Reversed-Circulant Matrices
Abstract
A direct data-driven iterative algorithm is developed to accurately estimate the H∞ norm of a linear time-invariant system from continuous operation, i.e., without resetting the system. The main technical step involves a reversed-circulant matrix that can be evaluated in a model-free setting by performing experiments on the real system.
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